Chemical Research in Chinese Universities ›› 2026, Vol. 42 ›› Issue (3): 757-767.doi: 10.1007/s40242-026-6011-6
• Review Articles • Previous Articles Next Articles
SUN Kai1, ZHOU Linlin2, FU Xiuting1, LI Panpan1, JIN Shao1, TIAN Shubo1
Received:2026-01-10
Accepted:2026-02-14
Published:2026-06-02
Contact:
TIAN Shubo,E-mail:tianshubo@mail.buct.edu.cn;JIN Shao,E-mail:jinshao@mail.buct.edu.cn
E-mail:tianshubo@mail.buct.edu.cn;jinshao@mail.buct.edu.cn
Supported by:SUN Kai, ZHOU Linlin, FU Xiuting, LI Panpan, JIN Shao, TIAN Shubo. Coordination Structure of Single-atom M-NC[J]. Chemical Research in Chinese Universities, 2026, 42(3): 757-767.
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
| [1] Noyori R., Nat. Chem., 2009, 1, 5. [2] Roduner E., Chem. Soc. Rev., 2014, 43, 8226. [3] Yang X. F., Wang A., Qiao B., Li J., Liu J., Zhang T., Acc. Chem. Res., 2013, 46, 1740. [4] Wang A. Q., Li J., Zhang T., Nat. Rev. Chem., 2018, 2, 65. [5] Kaiser S. K., Chen Z., Faust Akl D., Mitchell S., Perez-Ramirez J., Chem. Rev., 2020, 120, 11703. [6] Chen Y. J., Ji S. F., Chen C., Peng Q., Wang D. S., Li Y. D., Joule, 2018, 2, 1242. [7] Zhu C. X., Yang J. R., Zhang J. W., Wang X. Q., Gao Y., Wang D. S., Pan H. G., Interdiscip. Mater., 2024, 3, 74. [8] Gawande M. B., Fornasiero P., Zboril R., ACS Catal., 2020, 10, 2231. [9] Yan L., Li P. P., Zhu Q. Y., Kumar A., Sun K., Tian S. B., Sun X. M., Chem, 2023, 9, 280. [10] Sun K., Xu W. W., Lin X., Tian S. B., Lin W. F., Zhou D. J., Sun X. M., Adv. Mater. Interfaces, 2021, 8, 2001360. [11] Tian S., Wang Z., Gong W., Chen W., Feng Q., Xu Q., Chen C., Chen C., Peng Q., Gu L., Zhao H., Hu P., Wang D., Li Y., J. Am. Chem. Soc., 2018, 140, 11161. [12] Tian Y., Li M., Wu Z., Sun Q., Yuan D., Johannessen B., Xu L., Wang Y., Dou Y., Zhao H., Zhang S., Angew. Chem. Int. Ed., 2022, 61, e202213296. [13] Zhu Z., Yin H., Wang Y., Chuang C. H., Xing L., Dong M., Lu Y. R., Casillas-Garcia G., Zheng Y., Chen S., Dou Y., Liu P., Cheng Q., Zhao H., Adv. Mater., 2020, 32, e2004670. [14] Tian S. B., Hu M., Xu Q., Gong W. B., Chen W. X., Yang J. R., Zhu Y. Q., Chen C., He J., Liu Q., Zhao H. J., Wang D. S., Li Y. D., Sci. China Mater., 2021, 64, 642. [15] Gan T., Wang D. S., Nano Res., 2024, 17, 18. [16] Yan L., Wang D., Li M., Lu R., Lu M., Li P., Wang K., Jin S., Wang Z., Tian S., Angew. Chem. Int. Ed., 2024, 63, e202410832. [17] Ji S., Chen Y., Wang X., Zhang Z., Wang D., Li Y., Chem. Rev., 2020, 120, 11900. [18] Lang R., Du X., Huang Y., Jiang X., Zhang Q., Guo Y., Liu K., Qiao B., Wang A., Zhang T., Chem. Rev., 2020, 120, 11986. [19] Zhuo H. Y., Zhang X., Liang J. X., Yu Q., Xiao H., Li J., Chem. Rev., 2020, 120, 12315. [20] Lu M., Kang X., Qian C., Wang K., Ren X., Wang R., Sun K., Chen Z., Duan X., Tian S., Angew. Chem. Int. Ed., 2025, 64, e202508064. [21] Qiao B., Wang A., Yang X., Allard L. F., Jiang Z., Cui Y., Liu J., Li J., Zhang T., Nat. Chem., 2011, 3, 634. [22] Liu J., Chin. J. Catal., 2017, 38, 1460. [23] Ogino I., Chin. J. Catal., 2017, 38, 1481. [24] Asokan C., DeRita L., Christopher P., Chin. J. Catal., 2017, 38, 1473. [25] Zhou K. L., Wang Z., Han C. B., Ke X., Wang C., Jin Y., Zhang Q., Liu J., Wang H., Yan H., Nat. Commun., 2021, 12, 3783. [26] Li X., Yang X., Huang Y., Zhang T., Liu B., Adv. Mater., 2019, 31, e1902031. [27] Yang H., Shang L., Zhang Q., Shi R., Waterhouse G. I. N., Gu L., Zhang T., Nat. Commun., 2019, 10, 4585. [28] Jiang K., Back S., Akey A. J., Xia C., Hu Y., Liang W., Schaak D., Stavitski E., Norskov J. K., Siahrostami S., Wang H., Nat. Commun., 2019, 10, 3997. [29] Xu H., Zhang L., Wang H., Zhang S., Li W., Wang X., Song S., Wang D., Shi Z., Chem. Res. Chinese Universities, 2023, 39, 948. [30] Hannagan R. T., Giannakakis G., Flytzani-Stephanopoulos M., Sykes E. C. H., Chem. Rev., 2020, 120, 12044. [31] Xia C., Qiu Y., Xia Y., Zhu P., King G., Zhang X., Wu Z., Kim J. Y. T., Cullen D. A., Zheng D., Li P., Shakouri M., Heredia E., Cui P., Alshareef H. N., Hu Y., Wang H., Nat. Chem., 2021, 13, 887. [32] Yang T., Zhang H., Zhan C. H., Liang L. L., Xu Y., Ruan P. P., Zhang Y., Li J. W., Wang L., Lv X. M., Yang S. Z., Pao C. W., Huang X. Q., Chem. Catal., 2022, 2, 3607. [33] Sun Q., Wang N., Zhang T., Bai R., Mayoral A., Zhang P., Zhang Q., Terasaki O., Yu J., Angew. Chem. Int. Ed., 2019, 58, 18570. [34] Liu Y., Yang N., Feng H., Li N., Zhang X., Sheng Z., Lv Y., Dai S., Tian S., Li D., J. Am. Chem. Soc., 2025, 147, 45966. [35] Yin P., Yao T., Wu Y., Zheng L., Lin Y., Liu W., Ju H., Zhu J., Hong X., Deng Z., Zhou G., Wei S., Li Y., Angew. Chem. Int. Ed., 2016, 55, 10800. [36] Li R. Z., Wang D. S., Nano Res., 2022, 15, 6888. [37] Vijay S., Ju W., Bruckner S., Tsang S. C., Strasser P., Chan K. R., Nat. Catal., 2021, 4, 1024. [38] Jia C., Tan X., Zhao Y., Ren W., Li Y., Su Z., Smith S. C., Zhao C., Angew. Chem. Int. Ed., 2021, 60, 23342. [39] Varela A. S., Ju W., Bagger A., Franco P., Rossmeisl J., Strasser P., ACS Catal., 2019, 9, 7270. [40] Li B. Y., Ou H. H., Chen S. H., Su Y. Q., Wang D. S., Chem. Res. Chinese Universities, 2023, 39, 527. [41] Xie X. H., He C., Li B. Y., He Y. H., Cullen D. A., Wegener E. C., Kropf A. J., Martinez U., Cheng Y. W., Engelhard M. H., Bowden M. E., Song M., Lemmon T., Li X. S., Nie Z. M., Liu J., Myers D. J., Zelenay P., Wang G. F., Wu G., Ramani V., Shao Y. Y., Nat. Catal., 2020, 3, 1044. [42] Jiao L., Li J., Richard L. L., Sun Q., Stracensky T., Liu E., Sougrati M. T., Zhao Z., Yang F., Zhong S., Xu H., Mukerjee S., Huang Y., Cullen D. A., Park J. H., Ferrandon M., Myers D. J., Jaouen F., Jia Q., Nat. Mater., 2021, 20, 1385. [43] Li J. K., Sougrati M. T., Zitolo A., Ablett J. M., Oguz I. C., Mineva T., Matanovic I., Atanassov P., Huang Y., Zenyuk I., Di Cicco A., Kumar K., Dubau L., Maillard F., Drazic G., Jaouen F., Nat. Catal., 2021, 4, 10. [44] Sun K., Lu R., Liu Y., Webb J., Hanif M., Zhao Y., Wang Z., Waterhouse G. I. N., Angew. Chem. Int. Ed., 2025, 64, e202416070. [45] Wang C. B., Li P., Chen D. H., Zhang R. Y., Wang L., Zong L. B., Chem. Res. Chinese Universities, 2024, 40, 462. [46] Kumar A., Goyal N., Mathur S., Bakhtiyarovich I. A., Zhao Y., Khalid M., Ubaidullah M., Al-Enizi A. M., Coord. Chem. Rev., 2026, 549, 217244. [47] Wei Y., Wang D., Wang S., Chou J., Li X., Chen Y., Du X., Wang W., Chen Z., Coord. Chem. Rev., 2026, 549, 217316. [48] Murphy E., Liu Y., Matanovic I., Ruscher M., Huang Y., Ly A., Guo S., Zang W., Yan X., Martini A., Timoshenko J., Cuenya B. R., Zenyuk I. V., Pan X., Spoerke E. D., Atanassov P., Nat. Commun., 2023, 14, 4554. [49] Zhao J., Ren X., Liu X., Kuang X., Wang H., Zhang C., Wei Q., Wu D., Chem. Eng. J., 2023, 452, 139533. [50] Xue Y., Yu Q., Ma Q., Chen Y., Zhang C., Teng W., Fan J., Zhang W. X., Environ. Sci. Technol., 2022, 56, 14797. [51] Li Z., Li G., Jiang L., Li J., Sun G., Xia C., Li F., Angew. Chem. Int. Ed., 2015, 54, 1494. [52] Serov A., Artyushkova K., Atanassov P., Adv. Energy Mater., 2014, 4, 1301735. [53] Varela A. S., Ranjbar Sahraie N., Steinberg J., Ju W., Oh H. S., Strasser P., Angew. Chem. Int. Ed., 2015, 54, 10758. [54] Jia Y., Xiong X., Wang D., Duan X., Sun K., Li Y., Zheng L., Lin W., Dong M., Zhang G., Liu W., Sun X., Nano-Micro Lett., 2020, 12, 116. [55] Ma H., Zheng X., Zhang H., Ma G., Zhang W., Jiang Z., Chen D., Adv. Sci., 2023, 10, e2205635. [56] Wang T., Cao X., Jiao L., Small, 2021, 17, e2004398. [57] Zhang G. X., Jia Y., Zhang C., Xiong X. Y., Sun K., Chen R. D., Chen W. X., Kuang Y., Zheng L. R., Tang H. L., Liu W., Liu J. F., Sun X. M., Lin W. F., Dai H. J., Energy Environ. Sci., 2019, 12, 1317. [58] Li J. Z., Chen M. J., Cullen D. A., Hwang S., Wang M. Y., Li B. Y., Liu K. X., Karakalos S., Lucero M., Zhang H. G., Lei C., Xu H., Sterbinsky G. E., Feng Z. X., Su D., More K. L., Wang G. F., Wang Z. B., Wu G., Nat. Catal., 2018, 1, 935. [59] Rivera-Cárcamo C., Serp P., ChemCatChem, 2018, 10, 5058. [60] Guo X. Y., Lin S. R., Gu J. X., Zhang S. L., Chen Z. F., Huang S. P., ACS Catal., 2019, 9, 11042. [61] Chung H. T., Cullen D. A., Higgins D., Sneed B. T., Holby E. F., More K. L., Zelenay P., Science, 2017, 357, 479. [62] Liu S. W., Li C. Z., Zachman M. J., Zeng Y. C., Yu H. R., Li B. Y., Wang M. Y., Braaten J., Liu J. W., Meyer H. M., Lucero M., Kropf A. J., Alp E. E., Gong Q., Shi Q. R., Feng Z. X., Xu H., Wang G. F., Myers D. J., Xie J., Cullen D. A., Litster S., Wu G., Nat. Energy, 2022, 7, 652. [63] Marshall-Roth T., Libretto N. J., Wrobel A. T., Erton K. J., Pegis M. L., Ricke N. D., Voorhis T. V., Miller J. T., Surendranath Y., Nat. Commun., 2020, 11, 5283. [64] Zeng Y. C., Li C. Z., Li B. Y., Liang J. S., Zachman M. J., Cullen D. A., Hermann R. P., Alp E. E., Lavina B., Karakalos S., Lucero M., Zhang B. Z., Wang M. Y., Feng Z. X., Wang G. F., Xie J., Myers D. J., Dodelet J. P., Wu G., Nat. Catal., 2023, 6, 1215. [65] Zhang J., Zhao Y., Chen C., Huang Y. C., Dong C. L., Chen C. J., Liu R. S., Wang C., Yan K., Li Y., Wang G., J. Am. Chem. Soc., 2019, 141, 20118. [66] Pei Z., Zhang H., Guo Y., Luan D., Gu X., Lou X. W. D., Adv. Mater., 2024, 36, e2306047. [67] Li X. Y., Rong H. P., Zhang J. T., Wang D. S., Li Y. D., Nano Res., 2020, 13, 1842. [68] Song J., Lei X., Mu J., Li J., Song X., Yan L., Ding Y., Small, 2023, 19, e2304423. [69] Wu H. H., Li H. B., Zhao X. F., Liu Q. F., Wang J., Xiao J. P., Xie S. H., Si R., Yang F., Miao S., Guo X. G., Wang G. X., Bao X. H., Energy Environ. Sci., 2016, 9, 3736. [70] Yuan L., Zeng S. J., Li G. L., Wang Y. F., Peng K. L., Feng J. Q., Zhang X. P., Zhang S. J., Adv. Funct. Mater., 2023, 33, 2306994. [71] Yang J., Liu W., Xu M., Liu X., Qi H., Zhang L., Yang X., Niu S., Zhou D., Liu Y., Su Y., Li J. F., Tian Z. Q., Zhou W., Wang A., Zhang T., J. Am. Chem. Soc., 2021, 143, 14530. [72] Zhang F. F., Zhu Y. L., Tang C., Chen Y., Qian B. B., Hu Z. W., Chang Y. C., Pao C. W., Lin Q., Kazemi S. A., Wang Y., Zhang L., Zhang X. W., Wang H. T., Adv. Funct. Mater., 2022, 32, 2110224. [73] Sun K., Dong J. C., Sun H., Wang X. D., Fang J. J., Zhuang Z. B., Tian S. B., Sun X. M., Nat. Catal., 2023, 6, 1164. [74] Wu Y., Chen C., Yan X., Sun X., Zhu Q., Li P., Li Y., Liu S., Ma J., Huang Y., Han B., Angew. Chem. Int. Ed., 2021, 60, 20803. [75] Chen C., Chen Z. Q., Zhong J. X., Song X., Chen D. F., Liu S. J., Cheong W. C., Li J. Z., Tan X., He C., Zhang J. Q., Liu D., Yuan Q. H., Chen C., Peng Q., Li Y. D., Nano Res., 2023, 16, 4211. [76] Zhang T., Han X., Liu H., Biset-Peiró M., Li J., Zhang X., Tang P. Y., Yang B., Zheng L. R., Morante J. R., Arbiol J., Adv. Funct. Mater., 2022, 32, 2111446. [77] Li Z., Wu R., Xiao S., Yang Y., Lai L., Chen J. S., Chen Y., Chem. Eng. J., 2022, 430, 132882. [78] Zhao K. M., Liu S. Q., Li Y. Y., Wei X. L., Ye G. Y., Zhu W. W., Su Y. K., Wang J., Liu H. T., He Z., Zhou Z. Y., Sun S. G., Adv. Energy Mater., 2022, 12, 2103588. [79] Lu R., Quan C.i, Zhang C., He Q., Liao X., Wang Z., Zhao Y., Nano Res., 2022, 15, 6067. [80] Niu S., Hall M. B., Chem. Rev., 2000, 100, 353. [81] Ren L., Sun K., Wang Y., Kumar A., Liu J., Lu X., Zhao Y., Zhu Q., Liu W., Xu H., Sun X., Adv. Mater., 2024, 36, e2310547. [82] Huang L., Liu Q., Wu W., Gao G., Zheng X., Wang J., Dong S., Nat. Commun., 2023, 14, 5594. [83] Kleinherbers E., Stegmann T., Szpak N., Phys. Rev. B, 2023, 107, 195424. [84] Yu S., Levell Z., Jiang Z., Zhao X., Liu Y., J. Am. Chem. Soc., 2023, 145, 25352. [85] Yang L., Cheng D., Xu H., Zeng X., Wan X., Shui J., Xiang Z., Cao D., Proc. Natl. Acad. Sci. USA, 2018, 115, 6626. [86] Tang C., Jiao Y., Shi B., Liu J. N., Xie Z., Chen X., Zhang Q., Qiao S. Z., Angew. Chem. Int. Ed., 2020, 59, 9171. [87] Govind R. A., Carter E. A., Energy Environ. Sci., 2020, 13, 4962. [88] Wang M., Kong H., Wang J., Results Chem., 2023, 5, 100985. [89] Ye S., Liu F., She F., Chen J., Zhang D., Kumatani A., Shiku H., Wei L., Li H., Angew. Chem. Int. Ed., 2025, 64, e202425402. [90] Tamtaji M., Gao H. Y., Hossain D., Galligan P. R., Wong H. L., Liu Z. J., Liu H. W., Cai Y. T., Goddard WA, Luo Z. T., J. Mater. Chem. A, 2022, 10, 15309. [91] Tamtaji M., Chen S. G., Hu Z. Y., Goddard W. A., Chen G. H., J. Phys. Chem. C, 2023, 127, 9992. [92] Kumar A., Sun K., Duan X., Tian S., Sun X., Chem. Mater., 2022, 34, 5598. [93] Yan L., Mao Y., Li Y., Sha Q., Sun K., Li P., Waterhouse G. I. N., Wang Z., Tian S., Sun X., Angew. Chem. Int. Ed., 2025, 64, e202413179. [94] Ren X., Li M., Wang K., Lu R., Lu M., Li P., Yao Y., Jin S., Wang Z., Tian S., Adv. Funct. Mater., 2025, 35, 2503678. [95] Lu W., Zhao X., Chem. Res. Chinese Universities, 2025, 41, 432. [96] Hsu C. S., Wang J., Chu Y. C., Chen J. H., Chien C. Y., Lin K. H., Tsai L. D., Chen H. C., Liao Y. F., Hiraoka N., Cheng Y. C., Chen H. M., Nat. Commun., 2023, 14, 5245. [97] Wang J., Hsu C. S., Wu T. S., Chan T. S., Suen N. T., Lee J. F., Chen H. M., Nat. Commun., 2023, 14, 6576. [98] Wang J., Tan H. Y., Kuo T. R., Lin S. C., Hsu C. S., Zhu Y., Chu Y. C., Chen T. L., Lee J. F., Chen H. M., Small, 2021, 17, e2005713. [99] Tan H. Y., Wang J. L., Lin S. C., Kuo T. R., Chen H. M., Adv. Mater. Interfaces, 2023, 10, 2202050. [100] Lin T., Shen Y., Ge M., Li Y., Jiang Z., Lyu Z.-H., Liu J., Gu L., Liu X., Chem. Res. Chinese Universities, 2025, 41, 281. |
| [1] | LU Wenting, ZHAO Xiao. From Single-atom to Bi-atom and Ordered Multi-atom: Not Just a Number Changing for Electrocatalysis [J]. Chemical Research in Chinese Universities, 2025, 41(3): 432-446. |
| [2] | WANG Chengbin, LI Ping, CHEN Dehong, ZHANG Ruiyong, WANG Lei, ZONG Lingbo. Progress and Outlook of Carbon-supported Single-atom Electrocatalyst for Oxygen Reduction Reaction [J]. Chemical Research in Chinese Universities, 2024, 40(3): 462-474. |
| [3] | LI Boyang, OU Honghui, CHEN Shenghua, SU Ya-Qiong, WANG Dingsheng. Recent Advances in CO2 Reduction Reaction to Value-added C1 Products by Single-atom Catalysts [J]. Chemical Research in Chinese Universities, 2023, 39(4): 527-544. |
| [4] | LIU Zailun, SUN Like, ZHANG Qitao, TENG Zhenyuan, SUN Hongli, SU Chenliang. TiO2-supported Single-atom Catalysts: Synthesis, Structure, and Application [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1123-1138. |
| [5] | WU Fan, LIU Pengxin. Surface Organometallic Chemistry for Single-site Catalysis and Single-atom Catalysis [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1139-1145. |
| [6] | WANG Guowei, KE Xiaoxing, SUI Manling. Advanced TEM Characterization for Single-atom Catalysts: from Ex-situ Towards In-situ [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1172-1184. |
| [7] | FAN Kui, SUN Yining, XU Pengcheng, GUO Jian, LI Zhenhua, SHAO Mingfei. Single-atom Catalysts Based on Layered Double Hydroxides [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1185-1196. |
| [8] | MIAO Tianchang, DI Xin, HAO Feini, ZHENG Gengfeng, HAN Qing. Polymeric Carbon Nitride-based Single Atom Photocatalysts for CO2 Reduction to C1 Products [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1197-1206. |
| [9] | TENG Zhenyuan, YANG Hongbin, ZHANG Qitao, OHNO Teruhisa. Carrier Dynamics and Surface Reaction Boosted by Polymer-based Single-atom Photocatalysts [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1207-1218. |
| [10] | ZHENG Meng, WANG Jin. Regulating the Oxygen Affinity of Single Atom Catalysts by Dual-atom Design for Enhanced Oxygen Reduction Reaction Activity [J]. Chemical Research in Chinese Universities, 2022, 38(5): 1275-1281. |
| [11] | SONG Weiyu, LV Xintong, GAO Yang, WANG Lu. Photocatalytic HER Performance of TiO2-supported Single Atom Catalyst Based on Electronic Regulation:A DFT Study [J]. Chemical Research in Chinese Universities, 2022, 38(4): 1025-1031. |
| [12] | WANG Zelin, LIU Guihao, SHEN Tianyang, TAN Ling, ZHAO Yufei, SONG Yu-Fei. Remote Synthesis of Layered Double Hydroxide Nanosheets Through the Automatic Chemical Robot [J]. Chemical Research in Chinese Universities, 2022, 38(1): 217-222. |
| [13] | WANG Yuqing, TAO Li, CHEN Ru, LI Hao, SU Hui, ZHANG Nana, LIU Qinghua, WANG Shuangyin. Atomically Dispersed Fe on Nanosheet-linked, Defect-rich, Highly N-Doped 3D Porous Carbon for Efficient Oxygen Reduction [J]. Chemical Research in Chinese Universities, 2020, 36(3): 453-458. |
| [14] | ZHU Mengzhao, WANG Jing, WU Yuen. Single-atom Catalysts for Polymer Electrolyte Membrane Fuel Cells [J]. Chemical Research in Chinese Universities, 2020, 36(3): 320-328. |
| [15] | ZUO Ben-cheng, YANG Yue-hui, ZHANG Xiao-ling, ZHU Hong-tao. Studies on the Stability of Four-membered Ring Chelates (Ⅳ)──Sulphur Coordinated Xanthate Complexes [J]. Chemical Research in Chinese Universities, 1996, 12(4): 326-331. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||

